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An Emotional Face Evoked EEG Signal Recognition Method Based on Optimal EEG Feature and Electrodes Selection

机译:基于最优EEG特征和电极选择的情绪脸部诱发EEG信号识别方法

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In this work, we proposed an emotional face evoked EEG signal recognition framework, within this framework the optimal statistic features were extracted from original signals according to time and space, i.e., the span and electrodes. First, the EEG signals were collected using noise suppression methods, and principal component analysis (PCA) was used to reduce dimension and information redundant of data. Then the optimal statistic features were selected and combined from different electrodes based on the classification performance. We also discussed the contribution of each time span of EEG signals in the same electrodes. Finally, experiments using Fisher, Bayes and SVM classifiers show that our methods offer the better chance for reliable classification of the EEG signal. Moreover, the conclusion is supported by physiological evidence as follows: a) the selected electrodes mainly concentrate in temporal cortex of the right hemisphere, which relates with visual according to previous psychological research; b) the selected time span shows that consciousness of the face picture has a trend from posterior brain regions to anterior brain regions.
机译:在这项工作中,我们提出了一种情绪面孔诱发的EEG信号识别框架,在该框架内,根据时间和空间,即跨度和电极从原始信号中提取最佳统计特征。首先,使用噪声抑制方法收集EEG信号,并且使用主成分分析(PCA)来减少数据的维度和信息。然后基于分类性能从不同电极选择最佳统计特征。我们还讨论了同一电极中每次EEG信号的贡献。最后,使用Fisher,Bayes和SVM分类器的实验表明,我们的方法提供了更好的eEG信号分类机会。此外,结论是通过如下所述的生理证据支持:a)所选电极主要浓缩右半球的颞型皮质,这与根据以前的心理研究相关的视觉; b)所选的时间跨度表明,面部图像的意识具有从后脑区域到前脑区域的趋势。

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